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Relations between macropore network characteristics and the degree of preferential solute transport

机译:大孔网络特征与优先溶质程度的关系

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The characteristics of the soil macropore network determine the potential for fast transport of agrochemicals and contaminants through the soil. The objective of this study was to examine the relationships between macropore network characteristics, hydraulic properties and state variables and measures of preferential transport. Experiments were carried out under near-saturated conditions on undisturbed columns sampled from four agricultural topsoils of contrasting texture and structure. Macropore network characteristics were computed from 3-D X-ray tomography images of the soil pore system. Non-reactive solute transport experiments were carried out at five steady-state water flow rates from 2 to 12 mm hsup?1/sup. The degree of preferential transport was evaluated by the normalised 5% solute arrival time and the apparent dispersivity calculated from the resulting breakthrough curves. Near-saturated hydraulic conductivities were measured on the same samples using a tension disc infiltrometer placed on top of the columns. Results showed that many of the macropore network characteristics were inter-correlated. For example, large macroporosities were associated with larger specific macropore surface areas and better local connectivity of the macropore network. Generally, an increased flow rate resulted in earlier solute breakthrough and a shifting of the arrival of peak concentration towards smaller drained volumes. Columns with smaller macroporosities, poorer local connectivity of the macropore network and smaller near-saturated hydraulic conductivities exhibited a greater degree of preferential transport. This can be explained by the fact that, with only two exceptions, global (i.e. sample scale) continuity of the macropore network was still preserved at low macroporosities. Thus, for any given flow rate, pores of larger diameter were actively conducting solute in soils of smaller near-saturated hydraulic conductivity. This was associated with larger local transport velocities and, hence, less time for equilibration between the macropores and the surrounding matrix which made the transport more preferential. Conversely, the large specific macropore surface area and well-connected macropore networks associated with columns with large macroporosities limit the degree of preferential transport because they increase the diffusive flux between macropores and the soil matrix and they increase the near-saturated hydraulic conductivity. The normalised 5% arrival times were most strongly correlated with the estimated hydraulic state variables (e.g. with the degree of saturation in the macropores iR/isup2/sup = 0.589), since these combine into one measure the effects of irrigation rate and the near-saturated hydraulic conductivity function, which in turn implicitly depends on the volume, size distribution, global continuity, local connectivity and tortuosity of the macropore network.
机译:土壤大孔网络的特点决定了通过土壤快速运输农用化学品和污染物的潜力。本研究的目的是检查大孔网络特性,液压性能和状态变量与优先运输措施之间的关系。在从对比纹理和结构的四个农业表土中取样的未受干扰的柱的近饱和柱下进行实验。从土壤孔系统的三维X射线断层扫描图像计算宏观网络特性。非反应性溶质转运实验以2至12mm H H H 2-1 -1 / sup>的五个稳态水流速进行。通过标准化的5%溶质到达时间和由所得突破曲线计算的表观分散性评估优先迁移程度。使用放置在柱顶部的张力盘注入液位计,在相同样品上测量近饱和液压传导率。结果表明,许多巨大网络特性是间相互关联的。例如,大型宏观孔与较大的巨大巨孔表面区域和宏观网络的更好的局部连接相关。通常,增加的流速导致早期的溶质突破和峰值浓度的到达朝向较小排出的体积的转变。具有较小宏观速度的柱,Macropore网络的局部连接较差和较小的近饱和液压传导性表现出更大程度的优先运输。这可以通过以下事实来解释,只有两个例外,全局(即样本量表)宏观网络的连续性仍然保持在低宏观流。因此,对于任何给定的流速,较大直径的孔在较小的近饱和液压导率的土壤中主动地进行溶质。这与较大的局部运输速度有关,因此,在大孔和周围矩阵之间平衡的时间较少,这使得运输更优先。相反,大特异性大孔表面积和与具有大宏观流的柱相关的良好连接的大孔网络限制了优先运输的程度,因为它们增加了大孔和土壤基质之间的漫射通量,并且它们增加了近饱和的液压导电性。归一化5%到达时间与估计的液压状态变量最强烈地相关(例如,宏孔中的饱和程度 r r 2 2 = 0.589),因为这些结合到一种测量灌溉速率和近饱和液压导电功能的影响,又隐含地取决于大量网络的体积,尺寸分布,全局连续性,局部连接性和曲折性。

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